论文标题
基于云的NISQ量子计算机的快速指纹识别
Fast Fingerprinting of Cloud-based NISQ Quantum Computers
论文作者
论文摘要
基于云的量子计算机已成为现实,许多公司允许基于云的机器访问其数十个QUAT的机器。通过轻松访问量子计算机,量子信息处理将有可能革新计算,而基于Transmon的量子计算机是一些更有前途的设备之一。云服务提供商今天拥有各种这些和其他原型量子计算机,具有高度不同的设备属性,尺寸和性能。即使在同一基础硬件的量子计算机中也存在的变化也激发了研究如何与下一台设备明确区分和确定的一个设备的研究。作为一个案例研究,这项工作着重于25个IBM超导,固定频率transmon基于transmon的量子计算机的性质,这些量子计算机的年龄从几个月到大约2.5年不等。通过对当前和历史量子计算机校准数据的分析,这项工作发现了计算机中的关键功能,这些功能可以作为每个量子计算机独特硬件指纹的基础。这项工作展示了一种新的快速方法,可根据transmon Qubits的唯一频率特征可靠地提供基于指纹的量子量子计算机。注册和召回操作都非常快,因为指纹数据可以用量子机上的最小执行生成。基于Qubit频率的指纹也具有出色的设备间分离和设备内稳定性。
Cloud-based quantum computers have become a reality with a number of companies allowing for cloud-based access to their machines with tens to more than 100 qubits. With easy access to quantum computers, quantum information processing will potentially revolutionize computation, and superconducting transmon-based quantum computers are among some of the more promising devices available. Cloud service providers today host a variety of these and other prototype quantum computers with highly diverse device properties, sizes, and performances. The variation that exists in today's quantum computers, even among those of the same underlying hardware, motivate the study of how one device can be clearly differentiated and identified from the next. As a case study, this work focuses on the properties of 25 IBM superconducting, fixed-frequency transmon-based quantum computers that range in age from a few months to approximately 2.5 years. Through the analysis of current and historical quantum computer calibration data, this work uncovers key features within the machines that can serve as basis for unique hardware fingerprint of each quantum computer. This work demonstrates a new and fast method to reliably fingerprint cloud-based quantum computers based on unique frequency characteristics of transmon qubits. Both enrollment and recall operations are very fast as fingerprint data can be generated with minimal executions on the quantum machine. The qubit frequency-based fingerprints also have excellent inter-device separation and intra-device stability.